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Secure and Privacy-Preserving Microblogging Services: Attacks and Defenses.

机译:安全和隐私保护的微博服务:攻击和防御。

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摘要

Microblogging services such as Twitter, Sina Weibo, and Tumblr have been emerging and deeply embedded into people's daily lives. Used by hundreds of millions of users to connect the people worldwide and share and access information in real-time, the microblogging service has also became the target of malicious attackers due to its massive user engagement and structural openness. Although existed, little is still known in the community about new types of vulnerabilities in current microblogging services which could be leveraged by the intelligence-evolving attackers, and more importantly, the corresponding defenses that could prevent both the users and the microblogging service providers from being attacked.;This dissertation aims to uncover a number of challenging security and privacy issues in microblogging services and also propose corresponding defenses. This dissertation makes fivefold contributions. The first part presents the social botnet, a group of collaborative social bots under the control of a single botmaster, demonstrate the effectiveness and advantages of exploiting a social botnet for spam distribution and digital-influence manipulation, and propose the corresponding countermeasures and evaluate their effectiveness. Inspired by Pagerank, the second part describes TrueTop, the first sybil-resilient system to find the top-K influential users in microblogging services with very accurate results and strong resilience to sybil attacks. TrueTop has been implemented to handle millions of nodes and 100 times more edges on commodity computers. The third and fourth part demonstrate that microblogging systems' structural openness and users' carelessness could disclose the later's sensitive information such as home city and age. LocInfer, a novel and lightweight system, is presented to uncover the majority of the users in any metropolitan area; the dissertation also proposes MAIF, a novel machine learning framework that leverages public content and interaction information in microblogging services to infer users' hidden ages. Finally, the dissertation proposes the first privacy-preserving social media publishing framework to let the microblogging service providers publish their data to any third-party without disclosing users' privacy and meanwhile meeting the data's commercial utilities. This dissertation sheds the light on the state-of-the-art security and privacy issues in the microblogging services.
机译:Twitter,新浪微博和Tumblr等微博服务已经兴起,并已深深植入人们的日常生活中。微博服务因其庞大的用户参与度和结构开放性而被成千上万的用户用来连接世界各地的人们并实时共享和访问信息,也已成为恶意攻击者的目标。尽管存在,但社区中对于当前微博服务中的新型漏洞仍然知之甚少,这些漏洞可以由不断发展的情报攻击者利用,更重要的是,可以防止用户和微博服务提供商同时受到攻击的相应防御措施本文旨在揭示微博服务中许多具有挑战性的安全和隐私问题,并提出相应的防御措施。论文做出了五点贡献。第一部分介绍了社交僵尸网络,这是一组由单个僵尸程序控制的协作社交僵尸程序,展示了利用社交僵尸网络进行垃圾邮件分发和数字影响操纵的有效性和优势,并提出了相应的对策并评估了它们的有效性。 。受Pagerank的启发,第二部分介绍了TrueTop,这是第一个能够在微博服务中找到影响力排名靠前K的用户的sybil弹性系统,其结果非常准确,并且对sybil攻击具有很强的弹性。 TrueTop已实现为处理商用计算机上的数百万个节点和100倍的边缘。第三部分和第四部分表明,微博系统的结构开放性和用户的粗心大意可以泄露后者的敏感信息,例如家乡城市和年龄。 LocInfer是一种新颖,轻巧的系统,旨在揭示任何大都市地区的大多数用户;本文还提出了一种新颖的机器学习框架MAIF,该框架利用微博服务中的公共内容和交互信息来推断用户的隐藏年龄。最后,本文提出了第一个保护隐私的社交媒体发布框架,以使微博服务提供商可以将其数据发布给任何第三方而不会泄露用户的隐私,同时又可以满足数据的商业用途。本文揭示了微博服务中最新的安全性和隐私问题。

著录项

  • 作者

    Zhang, Jinxue.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 219 p.
  • 总页数 219
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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